首页> 外文会议>6th European Conference on Industrial Furnaces and Boilers Vol.1, Apr 2-5, 2002, Estoril-Lisboa, Portugal >Investigation of a duct burner design using CFD capabilities in conjunction with full-scale experiments
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Investigation of a duct burner design using CFD capabilities in conjunction with full-scale experiments

机译:使用CFD功能结合全面实验研究管道燃烧器设计

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Most new duct burners are supplied to heat recovery steam generator (HRSG) manufacturers for use in cogeneration systems. Key components of a simple cycle cogeneration plant include a turbine, generator, turbine exhaust gas duct, duct burner (optional), HRSG and downstream flue gas cleaning equipment. New developments in gas turbine technology are changing the boundary conditions for supplemental firing. In response, John Zink has an ongoing research project for the development of new duct burners achieving ultra low NOx emissions maintaining a good flame quality. The scope of this research work includes computational fluid dynamic modeling (CFD) and experimental testing of current design duct burner to obtain baseline data comparable with CFD results, and various experimental configurations through a full range of expected operating conditions. Experimental testing is performed in a test furnace at John Zink Company, Tulsa. The test furnace can be described as follows. Turbine exhaust gas (TEG) is simulated using John Zink Duct burners, which are supplied with air from a combustion air fan. Different O2 levels can be achieved by a combined water/steam injection. The temperature level of the TEG to the test burner can be adjusted with an air-cooled heat exchanger. Temperature and concentration measurements can be made at the test burner location and in the stack. Flame length, as well as NOx and CO emissions were measured for each data point. CFD modeling focused on the performance effects of turbine exhaust gas flow mal-distribution and the investigation on how reliable CFD models are, regarding flame stability calculations and NOx production. The results of this comprehensive testing and results from the CFD calculations will be compared and presented.
机译:大多数新的管道燃烧器都提供给热回收蒸汽发生器(HRSG)制造商,用于热电联产系统。简单循环热电厂的关键组件包括涡轮机,发电机,涡轮机排气管道,管道燃烧器(可选),HRSG和下游烟道气清洁设备。燃气轮机技术的新发展正在改变辅助燃烧的边界条件。作为回应,John Zink有一个正在进行的研究项目,用于开发新的管道燃烧器,该燃烧器实现了超低的NOx排放并保持了良好的火焰质量。这项研究的范围包括计算流体动力学建模(CFD)和当前设计风道燃烧器的实验测试,以获得与CFD结果相当的基线数据,以及在整个预期运行条件下进行的各种实验配置。实验测试在塔尔萨(Tulsa)的John Zink Company的测试炉中进行。该测试炉可以描述如下。涡轮废气(TEG)使用John Zink Duct燃烧器进行模拟,燃烧器的风扇向其中供应空气。通过水/蒸汽组合注入可以实现不同的O2水平。 TEG到测试燃烧器的温度水平可以通过风冷热交换器进行调节。可以在测试燃烧器的位置和烟囱中进行温度和浓度测量。测量每个数据点的火焰长度以及NOx和CO排放量。 CFD建模侧重于涡轮废气流量分布不均的性能影响,以及关于火焰稳定性计算和NOx产生的CFD模型的可靠性研究。将比较并介绍此综合测试的结果和CFD计算的结果。

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